Analysis of methanotrophic bacteria in Movile Cave by stable isotope probing

稳定同位素探测 甲烷单加氧酶 生物 甲烷厌氧氧化 洞穴 细菌 环境化学 甲烷利用细菌 甲烷 微观世界 微生物 α蛋白细菌 16S核糖体RNA 生态学 化学 遗传学
作者
Elena Hutchens,Stefan Radajewski,Marc G. Dumont,Ian R. McDonald,J. Colin Murrell
出处
期刊:Environmental Microbiology [Wiley]
卷期号:6 (2): 111-120 被引量:273
标识
DOI:10.1046/j.1462-2920.2003.00543.x
摘要

Summary Movile Cave is an unusual groundwater ecosystem that is supported by in situ chemoautotrophic production. The cave atmosphere contains 1–2% methane (CH 4 ), although much higher concentrations are found in gas bubbles that keep microbial mats afloat on the water surface. As previous analyses of stable carbon isotope ratios have suggested that methane oxidation occurs in this environment, we hypothesized that aerobic methane‐oxidizing bacteria (methanotrophs) are active in Movile Cave. To identify the active methanotrophs in the water and mat material from Movile Cave, a microcosm was incubated with a 10% 13 CH 4 headspace in a DNA‐based stable isotope probing (DNA‐SIP) experiment. Using improved centrifugation conditions, a 13 C‐labelled DNA fraction was collected and used as a template for polymerase chain reaction amplification. Analysis of genes encoding the small‐subunit rRNA and key enzymes in the methane oxidation pathway of methanotrophs identified that strains of Methylomonas , Methylococcus and Methylocystis/Methylosinus had assimilated the 13 CH 4 , and that these methanotrophs contain genes encoding both known types of methane monooxygenase (MMO). Sequences of non‐methanotrophic bacteria and an alga provided evidence for turnover of CH 4 due to possible cross‐feeding on 13 C‐labelled metabolites or biomass. Our results suggest that aerobic methanotrophs actively convert CH 4 into complex organic compounds in Movile Cave and thus help to sustain a diverse community of microorganisms in this closed ecosystem.
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